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通向复杂性的进化路径:代谢视角

The evolutionary paths towards complexity: a metabolic perspective.

作者信息

Weng Jing-Ke

出版信息

New Phytol. 2014 Mar;201(4):1141-9. doi: 10.1111/nph.12416. Epub 2013 Jul 26.

Abstract

As sessile organisms, land plants have exploited their metabolic systems to produce a panoply of structurally and functionally diverse natural chemicals and polymers to adapt to challenging ecosystems. Many of these core and specialized metabolites confer chemical shields against a multitude of abiotic stresses, while others play important roles in plants' interactions with their biotic environments. Plant specialized metabolites can be viewed as complex traits in the sense that the biosynthesis of these molecules typically requires multistep metabolic pathways comprising numerous specific enzymes belonging to diverse protein fold families. Resolving the evolutionary trajectories underlying the emergence of these specialized metabolic pathways will impact a fundamental question in biology – how do complex traits evolve in a Darwinian fashion? Here, I discuss several general patterns observed in rapidly evolving specialized metabolic systems in plants, and surmise mechanistic features at enzyme, pathway and organismal levels that rationalize the remarkable malleability of these systems through stepwise evolution. Future studies, focused on fine sampling of metabolic enzymes and pathways in phylogenetically related plant species, or employing directed evolution strategies in synthetic systems, will significantly broaden our perspective on how biological complexity arises at the metabolic level.

摘要

作为固着生物,陆地植物利用其代谢系统产生了一系列结构和功能多样的天然化学物质和聚合物,以适应具有挑战性的生态系统。这些核心代谢物和特殊代谢物中的许多都为植物提供了抵御多种非生物胁迫的化学屏障,而其他一些代谢物则在植物与生物环境的相互作用中发挥重要作用。植物特殊代谢物可被视为复杂性状,因为这些分子的生物合成通常需要多步代谢途径,这些途径由属于不同蛋白质折叠家族的众多特定酶组成。解析这些特殊代谢途径出现背后的进化轨迹,将影响生物学中的一个基本问题——复杂性状如何以达尔文方式进化?在这里,我讨论了在植物快速进化的特殊代谢系统中观察到的几种一般模式,并推测了在酶、途径和生物体水平上的机制特征,这些特征通过逐步进化使这些系统具有显著的可塑性。未来的研究,聚焦于对系统发育相关植物物种中的代谢酶和途径进行精细采样,或在合成系统中采用定向进化策略,将显著拓宽我们对代谢水平上生物复杂性如何产生的认识。

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